US8150182B2 - Image information decoding apparatus and image information decoding method for motion prediction and/or compensation of images - Google Patents
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Definitions
- the present invention relates to an image information encoding apparatus and a method therefor, an image information decoding apparatus and a method therefor, and a program which are used in receiving, through network media such as satellite broadcast, cable TV and/or Internet, etc., or in processing on storage media such as optical disc, magnetic disc or flash memory, etc. compressed image information (bit stream) by orthogonal transform such as discrete transform or Karnen-Loeve transform, etc. and motion compensation like MPEG (Moving Picture Experts Group), H.26x,
- MPEG 2 (ISO/IEC 13818-2) is defined as general purpose image encoding system, and is widely used at present for broad applications of professional use purpose and consumer use purpose at the standard where both interlaced scanning image and sequential scanning image, and standard resolution image and high definition image are covered or included.
- MPEG 2 compression system e.g., in the case of interlaced scanning image of standard resolution having 720 ⁇ 480 pixels, code quantity (bit rate) of 4 to 8 M bps is assigned, and in the case of interlaced scanning image of high resolution having 1920 ⁇ 1088 pixels, code quantity (bit rate) of 18 to 22 M bps is assigned so that high compression factor and satisfactory picture quality can be realized.
- the MPEG 2 was mainly directed to high picture quality encoding adapted for broadcast, but did not comply with code quantity (bit rate) lower than the MPEG 1, i.e., encoding system of higher compression factor. However, it is expected that need of such encoding system will be increased in future by popularization of portable terminals.
- code quantity bit rate
- standardization of the MPEG 4 encoding system was performed. In regard to the image encoding system, the standard thereof was approved for the International standard as ISO/IEC 14496-2 in December, 1998.
- H.26L ITU-T Q6/16 VCEG
- MPEG 4 Joint Model of Enhanced-Compression Video Coding
- motion prediction/compensation processing of high accuracy such as 1 ⁇ 4 pixel accuracy or 1 ⁇ 8 pixel accuracy are prescribed.
- motion prediction/compensation processing will be first described.
- the motion prediction/compensation processing of 1 ⁇ 4 pixel accuracy determined in the H.26L is shown in FIG. 2 .
- FIR filters respectively having 6 taps in horizontal and vertical directions are first used to generate pixel values of 1 ⁇ 2 pixel accuracy on the basis of pixel values stored in the frame memory.
- coefficients of the FIR filter coefficients indicated by the following formula (1) are determined. ⁇ 1, ⁇ 5, 20, 20, ⁇ 5, 1 ⁇ /32 (1)
- predictive picture of 1 ⁇ 4 pixel accuracy is generated by linear interpolation on the basis of the generated predictive picture of 1 ⁇ 2 pixel accuracy.
- filter banks shown in the following formula (2) are prescribed.
- FIG. 3 A method for bi-directional prediction using B picture in the H.26L is shown in FIG. 3 .
- B 2 picture and B 3 picture use I 1 picture and P 4 picture as reference picture
- B 5 picture and B 6 picture use P 4 picture and P 7 picture as reference picture.
- B picture is used to thereby permit realization of time scalability. Namely, since there is no possibility that B picture is used as reference range, B picture can be annulled without performing its decoding processing.
- Macro block type (MB_Type) with respect to B picture prescribed in the H.26L is shown in FIG. 5 .
- Forward of columns of respective Prediction Types corresponding to Code_number indicates type of forward direction
- Backward thereof indicates type of backward direction
- Bi-directional thereof indicates type of bi-direction
- intra thereof indicates type within picture (frame)
- the description such as “16 ⁇ 16” succeeding thereto indicates size of prediction block as shown in FIG. 1 .
- information to which “X” is attached of respective columns of intra_pred_mode, Ref_frame, Blk_size, MVDFW and MVDBW are defined with respect to corresponding Prediction Types.
- MVDFW and MVDBW respectively indicate forward motion vector information and backward motion vector information.
- the relationship between Code_number and Block Size as shown in FIG. 6 is prescribed.
- bi-directional prediction is used to thereby realize higher encoding efficiency as compared to I/P pictures, but a larger number of operation quantities and memory accesses are required as compared to the I/P pictures.
- the present invention has been proposed in view of conventional actual circumstances as described above, and its object is to provide an image information encoding apparatus a method therefor, an image information decoding apparatus and a method therefor, and a program which are adapted for reducing operation quantity and the number of memory accesses in motion prediction/compensation processing with respect to B picture.
- the image information encoding apparatus is directed to an image information encoding apparatus adapted for encoding an input image signal at least including intraframe encoding image, interframe forward prediction encoding image and interframe bi-directional encoding image by orthogonal transform and motion prediction/compression processing in which plural different pixel accuracies can be selected to generate image compressed information, the image information encoding apparatus comprising motion/prediction compensation means for performing motion prediction/compression processing based on different interpolation methods with respect to interframe forward prediction encoding image and interframe bi-directional prediction encoding image.
- the motion prediction compensation means selects, as an interpolation method with respect to interframe bi-directional prediction encoding image, a method in which operation quantity and the number of memory accesses are reduced as compared to the interframe forward prediction encoding image.
- the image information encoding apparatus further comprises picture type discrimination means for discriminating picture type of an input image signal, wherein the picture type discrimination means transmits, to motion prediction/compensation means, command corresponding to interframe forward encoding image or interframe bi-directional predictive encoding image in accordance with discrimination result of picture type to control the command.
- Such image information encoding apparatus discriminates picture type of an input image signal to perform, with respect to interframe bi-directional prediction encode image, motion prediction/compensation processing based on an interpolation method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward prediction image to thereby reduce operation quantity and the number of memory accesses in motion prediction/compensation processing.
- the image information encoding method is directed to an image information encoding method of encoding an input image signals at least including intraframe encoding image, interframe forward prediction encoding image and interframe bi-directional prediction encoding image by orthogonal transform and motion prediction/compensation processing in which plural different pixel accuracies can be selected to generate image compressed information, the image information encoding method including a motion prediction/compensation step of performing motion prediction/compensation processing based on different interpolation methods with respect to interframe forward prediction encoding image and interframe bi-direction prediction encoding image.
- the image information encoding method further includes a picture type discrimination step of discriminating picture type of an input image signal, wherein, at the picture type discrimination step, transmission of command corresponding to interframe forward prediction encoding image or interframe bi-directional prediction encoding image is performed in accordance with discrimination result of picture type so that processing at the motion prediction/compensation step is controlled.
- picture type of input image signal is discriminated so that motion prediction/compensation processing based on interpolation method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward prediction encoding image is performed with respect to interframe bi-directional predictive encoding image so that operation quantity and the number of memory accesses are reduced in motion prediction/compensation processing.
- the program according to the present invention is directed to a program for allowing computer to execute processing which encodes an input image signal at least including intraframe encoding image, interframe forward prediction encoding image and interframe bi-directional prediction encoding image by orthogonal transform and motion prediction/compensation processing in which plural different pixel accuracies can be selected to generate image compressed information, the program including a motion prediction/compensation processing based on different interpolation methods with respect to interframe forward prediction encode imaging and interframe bi-directional prediction encoding image.
- the motion prediction compensation step as an interpolation method with respect to interframe bi-directional prediction encoding image, there is selected a method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward prediction encoding image.
- the program according to the present invention further includes a picture type discrimination step of discriminating picture type of an input image signal, wherein, at the picture type discrimination step, transmission of command corresponding to interframe forward prediction encoding image or interframe bi-directional prediction encoding image is performed in accordance with discrimination result of picture type so that processing at motion prediction/compensation step is controlled.
- Such a program allows computer to discriminate picture type of an input image signal to perform prediction/compensation processing based on an interpolation method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward predictive encoding image to thereby reduce operation quantity and the number of memory accesses in motion prediction/compensation processing.
- the image information decoding apparatus is directed to an image information decoding apparatus adapted for decoding image compressed information at least including intraframe encoding image, interframe forward prediction encoding image and interframe bi-directional prediction encoding which have been generated at an image information encoding apparatus by inverse orthogonal transform and motion prediction/compensation processing in which plural different pixel accuracies can be selected, the image information decoding apparatus comprising motion prediction/compensation means for performing motion prediction/compensation processing based on different interpolation methods with respect to interframe forward prediction encoding image and interframe bi-directional prediction encoding image.
- the motion prediction/compensation means selects, as an interpolation method with respect to interframe bi-directional prediction encoding image, a method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward prediction encoding image.
- the image information decoding apparatus further comprises picture type discrimination means for discriminating picture type of image compressed information, wherein the picture type discrimination means performs transmission of interframe forward prediction encoding image or interframe bi-directional prediction encode imaging in accordance with discrimination result of the picture type to control the command.
- Such an image information decoding apparatus discriminates picture type of image compressed information generated in an image information encoding apparatus to perform motion prediction/compression processing based on an interpolation method in which operation quantity and the number of memory accesses can be reduced to more degree as compared to interframe forward prediction encoding image to thereby reduce operation quantity and the number of memory accesses in motion prediction/compression processing.
- the image information decoding method is directed to an image information decoding method of decoding image compressed information at least including intraframe encoding image, interframe forward prediction encoding image and interframe bi-directional prediction encoding image by inverse orthogonal transform and motion prediction/compensation processing in which plural different pixel accuracies can be selected, the image information decoding method including motion prediction/compensation step of performing motion prediction/compensation processing based on different interpolation methods with respect to interframe forward prediction encoding image and interframe bi-directional prediction encoding image.
- the image information decoding method further includes a picture type discrimination step of discriminating picture type of image compressed information, wherein, at the picture type discrimination step, transmission of command corresponding to interframe forward predictive encoding image or interframe bi-directional prediction encode imaging is performed in accordance with discrimination result of the picture type so that processing at the motion/compression is controlled.
- picture type of image compressed information generated at the image information encoding apparatus is discriminated, and motion prediction/compensation processing based on an interpolation method in which operation quantity and the number of memory accesses are reduced to more degree as compared to the interframe forward prediction encoding image so that operation quantity and the number of memory accesses in motion prediction/compensation processing are reduced.
- the program according to the present invention is directed to a program for allowing computer to execute processing which decodes image compressed information at least including intraframe encoding image, interframe forward prediction encoding image and interframe bi-directional prediction encoding image which have been generated at an image information encoding apparatus by inverse-orthogonal transform and motion prediction/compensation processing in which plural different pixel accuracies can be selected, the program including a motion prediction/compression step of performing motion prediction/compression processing based on different interpolation methods with respect to interframe forward predictive encode image and interframe bi-directional predictive encoding image.
- the program according to the present invention includes a picture type discrimination step of discriminating picture type of image compressed information, wherein, at the picture discrimination step, transmission of command corresponding to interframe forward predictive encoding image or interframe bi-directional predictive encoding image is performed in accordance with discrimination result of picture type so that processing at the motion prediction/compensation step is controlled.
- Such program allows computer to discriminate picture type of image compressed information generated at the image information encoding apparatus to perform motion prediction/compensation processing based on interpolation method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward predictive encoding image with respect to interframe bi-directional predictive encoding image to thereby reduce operation quantity and the number of memory accesses in the motion prediction/compensation processing.
- FIG. 1 is a view for explaining variable block size of motion prediction/compensation block determined at H.26L.
- FIG. 2 is a view for explaining motion prediction/compensation processing of 1 ⁇ 4 pixel accuracy determined at the H.26L.
- FIG. 3 is a view for explaining bi-directional prediction method using B picture at H.26L.
- FIG. 4 is a view for explaining PTYPE at H.26L.
- FIG. 5 is a view for explaining macro block type determined with respect to B picture at H.26L.
- FIG. 6 is a view for explaining Code number of field Blk-size in bi-directional prediction mode.
- FIG. 7 is a block diagram for explaining outline of the configuration of an image information encoding apparatus in the first embodiment of the present invention.
- FIG. 8 is a block diagram for explaining outline of the configuration of an image information decoding apparatus in thr first embodiment of the present invention.
- FIG. 9 is a block diagram for explaining outline of the configuration of an image information encoding apparatus in the second embodiment of the present invention.
- FIG. 10 is a block diagram for explaining outline of the configuration of an image information decoding apparatus in the second embodiment according to the present invention.
- the present invention is applied to an image information encoding apparatus adapted for changing an input image signal into blocks in accordance with, e.g., H.26L system to implement orthogonal transform thereto on the block basis to perform quantization thereof to generate image compressed information, and an image information decoding apparatus adapted for inverse-quantizing the image compressed information to implement inverse-orthogonal transform thereto to decode such image information.
- an image information encoding apparatus adapted for changing an input image signal into blocks in accordance with, e.g., H.26L system to implement orthogonal transform thereto on the block basis to perform quantization thereof to generate image compressed information
- an image information decoding apparatus adapted for inverse-quantizing the image compressed information to implement inverse-orthogonal transform thereto to decode such image information.
- interframe forward predictive encoding image hereinafter referred to as P picture
- interframe bi-directional predictive encoding image hereinafter referred to as B picture
- interpolation methods different for P picture and B picture are used, thereby making it possible to reduce operation quantity and the number of memory accesses which are required.
- the image information encoding apparatus 10 in this embodiment comprises an A/D converting unit 11 , a picture sorting buffer 12 , an adder 13 , an orthogonal transform unit 14 , a quantization unit 15 , a reversible encoding unit 16 , a storage buffer 17 , an inverse-quantization unit 18 , an inverse-orthogonal transform unit 19 , a frame memory 20 , a motion prediction/compensation unit 21 , a picture type discrimination unit 22 , and a rate control unit 23 .
- the A/D converting unit 11 converts an inputted image signal into a digital signal.
- the picture sorting buffer 12 performs sorting of frames in accordance with GOP (Group of Pictures) structure of image compressed information outputted from the image information encoding apparatus 10 .
- GOP Group of Pictures
- the picture sorting buffer 12 delivers image information of the entirety of frame to the orthogonal transform unit 14 .
- the orthogonal transform unit 14 implements orthogonal transform such as discrete cosine transform or Karhunen-Loeve transform, etc. to image information to deliver transform coefficients to the quantization unit 15 .
- the quantization unit 15 implements quantization processing to the transform coefficients delivered from the orthogonal transform unit 14 .
- the reversible encoding unit 16 implements reversible encoding such as variable length encoding or arithmetic encoding, etc. to the quantized transform coefficients to deliver the encoded transform coefficients to the storage buffer 17 to store them thereinto.
- the encoded transform coefficients are outputted as image compressed information.
- Behavior of the quantization unit 15 is controlled by the rate control unit 23 . Moreover, the quantization unit 15 delivers quantized transform coefficients to the inverse-quantization unit 18 . The inverse-quantization unit 18 inverse-quantizes those transform coefficients.
- the inverse-orthogonal transform unit 19 implements inverse-orthogonal transform processing to the inverse-quantized transform coefficients to generate decoded image information to deliver the information to the frame memory 20 to store them thereinto.
- the picture sorting buffer 12 delivers image information to the motion prediction/compensation unit 21 . Moreover, the picture sorting buffer 12 delivers information of picture type of frame Picture_type to the picture type discrimination unit 22 . The picture type discrimination unit 22 transmits command to the motion prediction/compensation unit 21 on the basis of that information.
- the motion prediction/compensation unit 21 takes out, from the frame memory 20 , image information which is referred to implement motion prediction/compensation processing by using interpolation methods different in P picture and B picture as described later on the basis of the command transmitted from the picture type discrimination unit 22 to generate reference image information.
- the motion prediction/compensation unit 21 delivers this reference image information to the adder 13 .
- the adder 13 converts the reference image information into difference signal between the reference image information and the image information.
- the motion compensation/prediction unit 21 delivers motion vector information to the reversible encoding unit 16 .
- the reversible encoding unit 16 implements reversible encoding processing such as variable length encoding or arithmetic encoding, etc. to that motion vector information to form information to be inserted into header portion of image compressed information. It should be noted that since other processing are similar to processing in the case of image compressed information to which intra-encoding is implemented, their explanation will be omitted.
- the image information decoding apparatus 30 in this embodiment comprises a storage buffer 31 , a reversible decoding unit 32 , an inverse-quantization unit 33 , an inverse-orthogonal transform unit 34 , an adder 35 , a picture sorting buffer 36 , a D/A converting unit 37 , a motion prediction/compensation unit 38 , a frame memory 39 , and a picture type discrimination unit 40 .
- the storage buffer 31 temporarily stores inputted image compressed information thereafter to transfer it to the reversible decoding unit 32 .
- the reversible decoding unit 32 implements processing such as variable length decoding or arithmetic decoding, etc. to image compressed information on the basis of determined format of image compressed information to deliver quantized transform coefficients to the inverse-quantization unit 33 .
- the reversible decoding unit 32 also decodes motion vector information stored in the header portion of image compressed information to deliver the information thereof to the motion prediction/compensation unit 38 .
- the reversible decoding unit 32 delivers information of picture type of frame Picture_type to the picture discrimination unit 40 .
- the picture type discrimination unit 40 transmits command to the motion prediction/compensation unit 38 on the basis of that information.
- the inverse-quantization unit 33 inverse-quantizes the quantized transform coefficients delivered from the reversible decoding unit 32 to deliver transform coefficients to the inverse-orthogonal transform unit 34 .
- the inverse-orthogonal transform unit 34 implements inverse-orthogonal transform such as inverse discrete cosine transform or inverse Karhunen-Loeve transform, etc. to the transform coefficients on the basis of the determined format of image compressed information.
- the inverse-orthogonal transform unit 34 delivers inverse-orthogonally transformed image information to the picture sorting buffer 36 .
- the picture sorting buffer 36 temporarily stores this image information thereafter to deliver it to the D/A converting unit 37 .
- the D/A converting unit 37 implements D/A converting processing to the image information to output it.
- the motion prediction/compensation unit 38 takes out, from the frame memory 39 , image information to be referred to implement motion prediction/compensation processing by using interpolation methods different for P picture and B picture as described later on the basis of reversibly decoded motion vector information and command transmitted from the picture type discrimination unit 40 to generate reference image information.
- the adder 35 synthesizes this reference image and output from the inverse-orthogonal transform unit 34 . It should be noted that since other processing are similar to processing of intra-encoded frame, its detailed explanation will be omitted.
- the image information encoding apparatus 10 and the image information decoding apparatus 30 perform motion prediction/compensation processing by using interpolation methods different in P picture and B picture at motion prediction/compression units 21 , 38 on the basis of commands transmitted from the picture type discrimination units 22 , 40 to thereby reduce operation quantity and the number of memory accesses which are required.
- the motion prediction/compensation unit 21 At the motion prediction/compensation unit 21 , there are stored information relating to two filter coefficients for P picture and B picture.
- the motion prediction/compensation unit 21 implements different motion prediction/compensation processing to P picture and B picture by the first method or the second method indicated below.
- motion prediction/compensation processing of the same pixel accuracy is implemented to P picture and B picture.
- filter having lesser number of taps is used for B picture.
- filter coefficients of 8 taps shown in the following formula (3) are used in regard to P picture, and predictive picture of 1 ⁇ 8 pixel accuracy is generated by linear interpolation in regard to B picture.
- filter coefficients of 8 taps as shown in the following formula (4) are used with respect to respective phases in regard to P picture to generate predictive picture of 1 ⁇ 4 pixel accuracy.
- filter coefficients of 6 taps shown in the following formula (5) are used to generate predictive picture of 1 ⁇ 2 pixel accuracy, and predictive picture of 1 ⁇ 4 pixel accuracy is generated by linear interpolation.
- predictive picture of 1 ⁇ 4 pixel accuracy may be generated by linear interpolation to perform motion prediction/compensation processing.
- filter coefficients of 6 taps show in the formula (5) may be used to generate predictive pixel of 1 ⁇ 2 pixel accuracy thereafter to generate predictive picture of 1 ⁇ 4 pixel accuracy by linear interpolation.
- predictive picture of 1 ⁇ 4 pixel accuracy may be generated by linear interpolation to perform motion prediction/compensation processing.
- filter coefficients of 8 taps shown in the above-described formula (3) are used to generate predictive picture of 1 ⁇ 8 pixel accuracy to perform motion prediction/compensation processing.
- filter coefficients of 6 taps shown in the above-described formula (5) are used to generate predictive picture of 1 ⁇ 2 pixel accuracy to generate predictive picture of 1 ⁇ 4 pixel accuracy by linear interpolation to perform motion prediction/compensation processing.
- predictive picture of 1 ⁇ 4 pixel accuracy may be generated, or predictive picture of 1 ⁇ 2 pixel accuracy mat be generated by linear interpolation to perform motion prediction/compensation processing.
- filter coefficients of 6 taps shown in the formula (5) may be used to generate predictive picture of 1 ⁇ 2 pixel accuracy thereafter to generate predictive picture of 1 ⁇ 4 pixel accuracy by linear interpolation.
- predictive picture of 1 ⁇ 2 pixel accuracy may be generated by linear interpolation to perform motion prediction/compensation processing.
- FIG. 9 another example of the image information encoding apparatus 50 according to the present invention is shown in FIG. 9 .
- the image information encoding apparatus 50 shown in FIG. 9 has the fundamental configuration similar to the image information encoding apparatus 10 shown in FIG. 7 .
- the image information encoding apparatus 50 is characterized in that it includes a motion prediction/compensation unit (fixed filter) 51 , and a motion prediction/compensation unit (adaptive filter) 52 , wherein use of any one of filters is switched by a switching unit 54 in accordance with command from a picture type discrimination unit 53 .
- a motion prediction/compensation unit fixed filter
- a motion prediction/compensation unit adaptive filter
- the image information encoding apparatus 50 includes, as components thereof, a single motion prediction/compensation unit 21 like the image information encoding apparatus 10 in the above-described first embodiment, and includes, as components thereof, two components of motion prediction/compensation unit (fixed filter) 51 as prescribed at present in the H.26L, and motion prediction/compensation unit (adaptive filter) 52 as proposed in the previously described literature 1 without having filter coefficients for P picture and B picture therewithin, whereby any one of filters is used in dependency upon P picture or B picture.
- a single motion prediction/compensation unit 21 like the image information encoding apparatus 10 in the above-described first embodiment
- two components of motion prediction/compensation unit (fixed filter) 51 as prescribed at present in the H.26L
- motion prediction/compensation unit (adaptive filter) 52 as proposed in the previously described literature 1 without having filter coefficients for P picture and B picture therewithin, whereby any one of filters is used in dependency upon P picture or B picture.
- image information decoding apparatus 70 shown in FIG. 10 has the fundamental configuration similar to the image information decoding apparatus 30 shown in FIG. 8 , and is characterized in that it includes a motion prediction/compensation unit (fixed filter) 71 , and a motion prediction/compensation unit (adaptive filter) 72 , wherein whether or not either one of these filters is used is switched by a picture discrimination unit 73 in accordance with command from a picture discrimination unit 73 .
- a motion prediction/compensation unit fixed filter
- a motion prediction/compensation unit adaptive filter
- picture sorting buffer 12 delivers information of picture type of frame Picture_type to picture type discrimination unit 53 .
- the picture type discrimination unit 53 transmits command to the switching unit 54 on the basis of that information.
- the switching unit 54 is switched to the side of a in the figure by the above-described command.
- motion prediction/compensation processing by the fixed filter is performed by using motion prediction/compensation unit (fixed filter) 51 .
- motion prediction/compensation processing by the adaptive filter is performed by using the motion prediction/compensation unit (adaptive filter).
- motion vector d(k) which minimizes predictive error is determined by using filter determined in advance.
- filter coefficients H(k) to minimize predictive error are determined with respect to motion vector d(k) determined at the first step.
- motion compensation processing is performed by the filter coefficients H(k) and the motion vector d(k) which have been determined in this way.
- variable length encoding processing or arithmetic encoding processing may be implemented at the reversible encoding unit 16 to compress information quantity thereafter to embed such information into image compressed information.
- pixel accuracy in motion prediction/compression processing at the motion prediction/compensation unit (fixed filter) 51 or motion prediction/compensation unit (adaptive filter) 52 of P picture and that of B picture may be equal to each other, and motion prediction/compression processing of higher pixel accuracy may be performed with respect to P picture as compared to B picture.
- Transmission of information of pixel accuracy is performed in the state embedded in MotionResolution field at RIP (Real-time Transfer Protocol) layer within image compressed information to be outputted.
- reversible decoding unit 32 delivers information of picture type of frame Picture_Type to picture type discrimination unit 73 .
- the picture type discrimination unit 73 transmits command to switching unit 74 on the basis of that information.
- the switching unit 74 is switched to the side of c in the figure by the above-described command.
- predictive mode information and motion vector information are delivered the motion prediction/compensation unit (fixed filter) 71 .
- motion prediction/compensation processing by fixed filter is performed on the basis of these information.
- the switching unit 74 is switched to the side of d in the figure by the above-described command.
- information relating to filter coefficients is delivered to motion prediction/compensation unit (adaptive filter) 72 along with predictive mode information and motion vector information.
- motion prediction/compensation processing by the adaptive filter is performed on the basis of these information.
- motion prediction/compensation unit fixed filter
- motion prediction/compensation unit adaptive filter
- motion prediction/compression processing based on different interpolation methods are performed with respect to P picture and B picture, thereby making it possible to reduce operation quantity and the number of memory accesses at B picture for which a larger operation quantity and the number of memory accesses are required as compared to P picture while suppressing deterioration in picture quality as minimum as possible.
- the present invention has been explained as the configuration of hardware in the above-described embodiments, the present invention may be also realized, without being limited to such implementations, by allowing CPU (Central Processing Unit) to respectively execute processing at image information encoding apparatuses 10 , 50 and image information decoding apparatuses 30 , 70 .
- CPU Central Processing Unit
- picture type of input image signal is discriminated to perform, with respect to interframe bi-directional predictive encoding image, motion prediction/compensation processing based on interpolation method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward predictive encoding image, thereby making it possible to reduce operation quantity and the number of memory accesses in motion prediction/compensation processing.
- the program according to the present invention is used to thereby allow computer to discriminate picture type of input image signal to perform motion prediction/compensation processing based on interpolation method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward predictive encoding picture with respect to interframe bi-directional predictive encoding image, thereby making it possible to reduce operation quantity and the number of memory accesses in motion prediction/compensation processing.
- picture type of image compressed information generated at the image information encoding apparatus is discriminated to perform motion prediction/compensation processing based on interpolation method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward predictive encoding image with respect to interframe bi-directional predictive encoding image, thereby making it possible to reduce operation quantity and the number of memory accesses in motion prediction/compensation processing.
- Another program according to the present invention is used to thereby allow computer to discriminate picture type of image compressed information generated at the image information encoding apparatus to perform motion prediction/compensation processing based on interpolation method in which operation quantity and the number of memory accesses are reduced to more degree as compared to interframe forward predictive encoding image with respect to interframe bi-directional predictive encoding image, thereby making it possible to reduce operation quantity and the number of memory accesses in motion prediction/compensation processing.
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Abstract
Description
{1, −5, 20, 20, −5, 1}/32 (1)
1:1
⅛: {−3, 12, −37, 485, 71, −21, 6, −1}/512
2/8: {−3, 12, −37, 229, 71, −21, 6, −1}/256
⅜: {−6, 24, −76, 387, 229, −60, 18, −4}/512
4/8: {−3, 12, −39, 158, 158, −39, 12, −3}/256
⅝: {−4, 18, −60, 229, 387, −76, 24, −6}/512
6/8: {−1, 6, −21, 71, 229, −37, 12, −3}/256
⅞: {−1, 6, −21, 71, 485, −37, 12, −3}/512 (2)
1:1
⅛: {−3, 12, −37, 485, 71, −21, 6, −1}/512
2/8: {−3, 12, −37, 229, 71, −21, 6, −1}/256
⅜: {−6, 24, −76, 387, 229, −60, 18, −4}/512
4/8: {−3, 12, −39, 158, 158, −39, 12, −3}/256
⅝: {−4, 18, −60, 229, 387, −76, 24, −6}/512
6/8: {−1, 6, −21, 71, 229, −37, 12, −3}/256
⅞: {−1, 6, −21, 71, 485, −37, 12, −3}/512 (3)
¼: {−3, 12, −37, 229, 71, −21, 6, −1}/256
2/4: {−3, 12, −39, 158, 158, −39, 12, −3}/256
¾: {−1, 6, −21, 71, 229, −37, 12, −3}/256 (4)
{1, −5, 20, 20, −5, 1}/32 (5)
Claims (3)
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PCT/JP2003/000606 WO2003067896A1 (en) | 2002-01-23 | 2003-01-23 | Image information coding device and method and image information decoding device and method |
US10/501,714 US7742648B2 (en) | 2002-01-23 | 2003-01-23 | Image information encoding apparatus and image information encoding method for motion prediction and/or compensation of images |
US12/346,351 US8155460B2 (en) | 2002-01-23 | 2008-12-30 | Image information decoding apparatus and image information decoding method for motion prediction and/or compensation of images |
US13/184,044 US8150182B2 (en) | 2002-01-23 | 2011-07-15 | Image information decoding apparatus and image information decoding method for motion prediction and/or compensation of images |
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US13/184,044 Expired - Fee Related US8150182B2 (en) | 2002-01-23 | 2011-07-15 | Image information decoding apparatus and image information decoding method for motion prediction and/or compensation of images |
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WO2003067896A1 (en) | 2003-08-14 |
JP2003219426A (en) | 2003-07-31 |
EP1469683A1 (en) | 2004-10-20 |
JP3861698B2 (en) | 2006-12-20 |
US20090129470A1 (en) | 2009-05-21 |
EP2560390A3 (en) | 2015-03-25 |
CN100574448C (en) | 2009-12-23 |
EP1469683A4 (en) | 2010-02-24 |
US20120189219A1 (en) | 2012-07-26 |
US20050157936A1 (en) | 2005-07-21 |
US20110274172A1 (en) | 2011-11-10 |
KR20040077774A (en) | 2004-09-06 |
EP1469683B1 (en) | 2015-03-04 |
CN1620821A (en) | 2005-05-25 |
US20150229956A1 (en) | 2015-08-13 |
US9078005B2 (en) | 2015-07-07 |
EP2560390A2 (en) | 2013-02-20 |
US8155460B2 (en) | 2012-04-10 |
KR100950743B1 (en) | 2010-04-05 |
US7742648B2 (en) | 2010-06-22 |
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